Okay. So I have a div and I figured out how to fade it out and replace it with certain text.

However, I want the second text that fades in to also fade out and a third div to fade in. After that, I want the fourth div to replace the third and so on.

How exactly can I go about achieving this?

Here's my code: http://jsfiddle.net/9Dubr/1/

<div id="foo">test</div>

$('#foo').delay(5000).fadeOut("slow", function(){
var div = $("<div id='foo'>test2</div>").hide();
$(this).replaceWith(div);
$('#foo').fadeIn(500);
});
up vote 3 down vote accepted

Try this recursive function

function fadeMessages(arr) {
    if (arr.length == 0) return;
    $('#foo').fadeOut("slow", function(){
        $("#foo").html(arr[0]).hide().fadeIn("slow", function() {
            arr.shift();
            fadeMessages(arr);
        });
    });
}

fadeMessages(["good", "morning", "to", "everyone", "<img src='https://38.media.tumblr.com/avatar_4892c96bf7cb_128.png'><br><button> OK </button>"]);
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<div id="foo">test</div>

  • And if I want the final part to include an image and a button, how could I achieve that? Your solution works for text, but I should've been clearer in the question. – Arun O Nov 5 '16 at 8:11
  • I updated the answer to include an image a button (basically any html you want), and remove the unnecessaryvar div = (thanks for pointing it out @Dmitriy Demir) – elfan Nov 5 '16 at 8:14
  • Cheers. Thank you for this efficient solution. Made me go start a tutorial series on recursive functions! – Arun O Nov 5 '16 at 8:15
  • Another query I have is if I want to delay the execution a little bit, and make the <div id="foo">test</div> to stay on screen longer, how would that work? I tried setTimeout but that didn't work. Or I'm doing it wrong. also, test and good slide up but everything else fades in. – Arun O Nov 5 '16 at 8:54
  • Nevermind. Figured it out. I added .delay before the .fadeout and .fadein – Arun O Nov 5 '16 at 9:07

You can try this,

function changeHtml(html, callback) {

$('#foo').fadeOut("slow", function(){
   $(this).html(html);
   $(this).fadeIn("slow", callback);
});
  
}

changeHtml('test2', function() {
  changeHtml('test3', function() {
     changeHtml('<img src=""/>', function() {
  
     });
  });
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div id="foo">test</div>

  • I want to replace the test2 with some more text and then I want to replace that text with an image and that image will be the final div which stays on screen. I'm not really sure how exactly I could achieve that. – Arun O Nov 5 '16 at 8:07
  • @ArunO you can try the updated code above – Aruna Nov 5 '16 at 8:15

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